Performance Evaluation of High-Power SiC MOSFET Modules in Comparison to Si IGBT Modules

绝缘栅双极晶体管 MOSFET 碳化硅 门驱动器 材料科学 功率MOSFET 切换时间 功率(物理) 功率半导体器件 电源模块 电气工程 逻辑门 光电子学 工程类 晶体管 电压 物理 冶金 量子力学
作者
Lei Zhang,Xibo Yuan,Xiaojie Wu,Congcong Shi,Jiahang Zhang,Yonglei Zhang
出处
期刊:IEEE Transactions on Power Electronics [Institute of Electrical and Electronics Engineers]
卷期号:34 (2): 1181-1196 被引量:296
标识
DOI:10.1109/tpel.2018.2834345
摘要

The higher voltage blocking capability and faster switching speed of silicon-carbide (SiC) mosfets have the potential to replace Si insulated gate bipolar transistors (IGBTs) in medium-/low-voltage and high-power applications. In this paper, a state-of-the-art commercially available 325 A, 1700 V SiC mosfet module has been fully characterized under various load currents, bus voltages, and gate resistors to reveal their switching capability. Meanwhile, Si IGBT modules with similar power ratings are also tested under the same conditions. From the test results, several interesting points have been obtained: different to the Si IGBT module, the over-shoot current of the SiC mosfet module increases linearly with the increase of the load current and it has been explained by a model of the over-shoot current proposed in this paper; the induced negative gate voltage due to the complementary device turn-off (crosstalk effect) is more harmful to the SiC mosfet module than the induced positive gate voltage during turn-on when the gate off-voltage is -6 V; the maximum dv/dt and di/dt (electromagnetic interference) during switching transients of the SiC mosfet module are close to those of the Si IGBT module when the gate resistance is larger than 8 Ω but the switching loss of the SiC mosfet module is much smaller; the switching losses of the Si IGBT module are greater than those of the SiC mosfet module even when the gate resistance of the former is reduced to zero. An accurate power loss model, which is suitable for a three-phase two-level converter based on SiC mosfet modules considering the power loss of the parasitic capacitance, has been presented and verified in this paper. From the model, a 96.2% efficiency can be achieved at the switching frequency of 80 kHz and the power of 100 kW.
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